EP0122364A1 - A mirror for a spectrophotometer - Google Patents

A mirror for a spectrophotometer Download PDF

Info

Publication number
EP0122364A1
EP0122364A1 EP84100296A EP84100296A EP0122364A1 EP 0122364 A1 EP0122364 A1 EP 0122364A1 EP 84100296 A EP84100296 A EP 84100296A EP 84100296 A EP84100296 A EP 84100296A EP 0122364 A1 EP0122364 A1 EP 0122364A1
Authority
EP
European Patent Office
Prior art keywords
mirror
light
portions
image
lens
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP84100296A
Other languages
German (de)
French (fr)
Inventor
David Robert Skinner
Rex Andrew Stokes
Lewis Ormand Freeman
Alan Robert Mcneill
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Commonwealth of Australia
Original Assignee
Commonwealth of Australia
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Commonwealth of Australia filed Critical Commonwealth of Australia
Publication of EP0122364A1 publication Critical patent/EP0122364A1/en
Withdrawn legal-status Critical Current

Links

Images

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/10Beam splitting or combining systems
    • G02B27/14Beam splitting or combining systems operating by reflection only
    • G02B27/143Beam splitting or combining systems operating by reflection only using macroscopically faceted or segmented reflective surfaces
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J1/00Photometry, e.g. photographic exposure meter
    • G01J1/10Photometry, e.g. photographic exposure meter by comparison with reference light or electric value provisionally void
    • G01J1/20Photometry, e.g. photographic exposure meter by comparison with reference light or electric value provisionally void intensity of the measured or reference value being varied to equalise their effects at the detectors, e.g. by varying incidence angle
    • G01J1/34Photometry, e.g. photographic exposure meter by comparison with reference light or electric value provisionally void intensity of the measured or reference value being varied to equalise their effects at the detectors, e.g. by varying incidence angle using separate light paths used alternately or sequentially, e.g. flicker
    • G01J1/36Photometry, e.g. photographic exposure meter by comparison with reference light or electric value provisionally void intensity of the measured or reference value being varied to equalise their effects at the detectors, e.g. by varying incidence angle using separate light paths used alternately or sequentially, e.g. flicker using electric radiation detectors
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J3/00Spectrometry; Spectrophotometry; Monochromators; Measuring colours
    • G01J3/02Details
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J3/00Spectrometry; Spectrophotometry; Monochromators; Measuring colours
    • G01J3/02Details
    • G01J3/0205Optical elements not provided otherwise, e.g. optical manifolds, diffusers, windows
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J3/00Spectrometry; Spectrophotometry; Monochromators; Measuring colours
    • G01J3/02Details
    • G01J3/0205Optical elements not provided otherwise, e.g. optical manifolds, diffusers, windows
    • G01J3/021Optical elements not provided otherwise, e.g. optical manifolds, diffusers, windows using plane or convex mirrors, parallel phase plates, or particular reflectors
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01JMEASUREMENT OF INTENSITY, VELOCITY, SPECTRAL CONTENT, POLARISATION, PHASE OR PULSE CHARACTERISTICS OF INFRARED, VISIBLE OR ULTRAVIOLET LIGHT; COLORIMETRY; RADIATION PYROMETRY
    • G01J3/00Spectrometry; Spectrophotometry; Monochromators; Measuring colours
    • G01J3/02Details
    • G01J3/08Beam switching arrangements

Definitions

  • This invention relates to a mirror for a spectrophotometer and in particular for a double beam spectrophotometer which can be easily transported for field use.
  • Measurement of the spectral reflectance of growing vegetation and terrain features has obvious relevance to fields of applied science such as land-use survey and camouflage.
  • Methods used in the past fall roughly into three categories, namely photogrammetric, multi-spectral survey and spectrophotometric, each of which has its disadvantages.
  • Photogrammetric methods suffer from inadequate spectral range, sensitivity and accuracy.
  • Multi-spectral survey is generally carried out from a complex and costly installation in a satellite or aircraft, and gives insufficient data and image resolution for some purposes (e.g. colour measurements on individual trees).
  • Spectrophotometric methods involving internal light sources are usuable only for the very small areas of ground or for individual leaves brought into the laboratory.
  • the only spectrophotometer using ambient lighting and remote imaging techniques known to us which has a double- beam facility requires both the sample and reference targets to be imaged within the same telescope field which is undesirable.
  • Single beam systems are also known which could possibly be used in the field but such systems suffer from the problems of correctly identifying the measuring field in a viewfinder of the system and it is also necessary to direct the system firstly at a sample, take all the measurements required at the wavelengths of interest and then manually direct the system at a reference target. During the time taken to redirect the system the ambient light may change considerably thereby giving a false reading of, for example, the reflectance of the sample as compared with that of the reference target.
  • our application No. 82300121.9 describes and claims an optical system for a spectrophotometer said system having a first optical branch for forming an image from a sample, and a second branch for forming an image from a reference target, a splitter means for directing a portion of said image formed by the first optical branch to an eye piece and to a detecting means and for directing a portion of said image formed by said second optical branch to said eye piece and to said detecting means, and a shutter means for sequentially allowing the image formed by the first branch to be received by said splitter means and the image formed by said second branch to be received by said splitter means.
  • Such an optical system allows a user to direct the first branch at a sample and the second branch at a reference target and uses ambient lighting to receive the sample and references images.
  • the first and second branches can be independently aimed and focussed.
  • the shutter means and splitter means allows the image in the first branch to be directed to the eye piece and detecting means so that the sample field can be identified. Since a shutter means is utilized, only a small amount of time elapses between the time the image in the first branch is received by the detector and the image in the second branch is received. Accordingly the first and second branches will be subject to the same illumination for a series of measurements.
  • the first branch may be directed to obtain an image of the foliage of a tree and obtain measurements therefrom directly in the field and thereby provide an accurate indication of the spectral reflectance of a reasonably sized area from which to evaluate types of camouflage or the like.
  • a mirror for a spectrophotometer is characterised by:
  • Such a mirror is particularly suitable for use as the splitter means of the optical system of a spectrophotometer as described above.
  • the mirror is arranged so that the portion of the mirror image in the first branch received at the detecting means passes through the aperture so that the image is not affected by the mirror, and the reflective portions of the mirror direct a part of the image in the first branch to the eye piece.
  • a portion of the image in the second branch passes through the transparent parts of the mirror to the eye piece, and the remainder of the image is reflected to the detecting means.
  • the optical system includes a sample branch formed of an aiming mirror 10 and an objective lens 12.
  • a reference branch includes an objective lens 14.
  • An erecting lens 16 and an eye piece 19 are provided and the lens 12 and the lens 16 and the eye piece 19 form a first telescope,with the lenses 14 and 16 and eye piece 19 forming a second telescope.
  • the first and second telescope have a common primary focus.
  • a segmented mirror 20 Located at the common primary focus is a segmented mirror 20.
  • a rotational shutter 18 is provided which is generally cone shaped and is driven by an electric motor (not shown) to rotate as shown by arrow A.
  • the mirror 20 projects into cone 22 of the shutter 18 and the cone 22,is provided with an opening 24 so that as the cone is rotated by the electric motor, light from the lens 12 passes through the opening to mirror 20. Then as the cone continues to rotate there is a period when the mirror 20 receives no light until the opening 24 allows the light from lens 14 to pass therethrough to the mirror 20 and then there is a further period of darkness until the opening again allows light to pass from lens 12 to mirror 20.
  • FIG. 2 shows the segmented mirror 20
  • the mirror is provided with a slit 30, two quadrant shaped portions 32 and one rectangular portion 32 which are aluminised to provide reflecting portions.
  • the remaining portion 34 of the mirror is transparent and is generally rectangular in configuration so that a lower portion 36 may be used to mount the mirror in a desired configuration.
  • the mirror 20 is mounted such that light passing from lens 12 through the opening 24 is reflected from the aluminized portions 32 and the remainder passes through slit 30 and portion 34 to alignment mirror 40. Accordingly reflected light from the aluminised portions 32 passes through erecting lens 16, rectangular reticle 17 and eye piece 19. The parts of the sample image corresponding to aluminised portions 32 are therefore seen in the eye piece 19. These are the portions Sl y S2 and S3 in Figure 3. The portions R 1 , R 2 and R 3 are transmitted to the mirror 40 and will appear black when the opening 24 allows light to pass from lens 12.
  • the field of view through eye piece 19 consists of a mosaic of parts of the sample and reference as shown in Figure 3 with the parts of the image from lens 14 at S 2 and the image from lens 12 at R G being transmitted to mirror 40. These are easily checked by alternately capping the sample and reference objective lenses wherein images will each be observed as semicircles, with missing strips corresponding to the input to the detecting system.
  • the measured field of view is further defined by the rectangular reticle 17.
  • the mirror 40 is arranged so that light passing through the slit 30 from lens 12 is reflected through relay lens 42, visible order sorting filter 44 to a lower half of the entrance slit in the monochromator 46.
  • Light of particular wavelengths is sequentially obtained from monochromator 46 and passed through an infra-red order sorting filter 48 to a movable mirror 50, an infra-red pass filter 52, cooled lead sulphide detector 54 or to photomultiplier tube 56 as in a conventional spectrophotometer.
  • mirror 50 is moved to allow light to pass to the detector 54 or is left in place to direct light to photomultiplier tube 56.
  • the monochromator is thus provided with an input in a four-part cycle of darkness then reference image from lens 14 then darkness then sample image from lens 12 as in a conventional spectrophotometer.
  • the spectral information generally required is in the visible and near infra-red spectrum in the range of 380 - 1800mm.
  • the shutter 18 may be provided with small holes (not shown) on flange 21.
  • Photodetectors are arranged to provide synchronizing pulses corresponding to darkness and light as the shutter rotates so that the detecting equipment is able to receive a signal which can be used to distinguish an image from the sample field and the image from the reference target. This would be well known to those familiar with spectrophotometers and will not be described herein.
  • the system would be located in a housing schematically shown by the reference numeral 60.

Abstract

A mirror (20) for a spectrophotometer has a slit (30), reflective portions (32) and transparent portions (34). When the mirror is illuminated from one side, light passes through the slit (30) and transparent portions (34) to a first location, and some light is reflected by the portions (32) to a second location. Similarly, when the mirror is illuminated from the other side, some light passes through the slit (30) and transparent portions (34) to the second location, and some light is reflected by the portions (32) to the first location.

Description

  • This invention relates to a mirror for a spectrophotometer and in particular for a double beam spectrophotometer which can be easily transported for field use.
  • Measurement of the spectral reflectance of growing vegetation and terrain features has obvious relevance to fields of applied science such as land-use survey and camouflage. Methods used in the past fall roughly into three categories, namely photogrammetric, multi-spectral survey and spectrophotometric, each of which has its disadvantages. Photogrammetric methods suffer from inadequate spectral range, sensitivity and accuracy. Multi-spectral survey is generally carried out from a complex and costly installation in a satellite or aircraft, and gives insufficient data and image resolution for some purposes (e.g. colour measurements on individual trees). Spectrophotometric methods involving internal light sources are usuable only for the very small areas of ground or for individual leaves brought into the laboratory. The only spectrophotometer using ambient lighting and remote imaging techniques known to us which has a double- beam facility requires both the sample and reference targets to be imaged within the same telescope field which is undesirable.
  • Single beam systems are also known which could possibly be used in the field but such systems suffer from the problems of correctly identifying the measuring field in a viewfinder of the system and it is also necessary to direct the system firstly at a sample, take all the measurements required at the wavelengths of interest and then manually direct the system at a reference target. During the time taken to redirect the system the ambient light may change considerably thereby giving a false reading of, for example, the reflectance of the sample as compared with that of the reference target.
  • With the object of overcoming some or all of these problems, our application No. 82300121.9, from which the present application is divided, describes and claims an optical system for a spectrophotometer said system having a first optical branch for forming an image from a sample, and a second branch for forming an image from a reference target, a splitter means for directing a portion of said image formed by the first optical branch to an eye piece and to a detecting means and for directing a portion of said image formed by said second optical branch to said eye piece and to said detecting means, and a shutter means for sequentially allowing the image formed by the first branch to be received by said splitter means and the image formed by said second branch to be received by said splitter means.
  • Such an optical system allows a user to direct the first branch at a sample and the second branch at a reference target and uses ambient lighting to receive the sample and references images. The first and second branches can be independently aimed and focussed. The shutter means and splitter means allows the image in the first branch to be directed to the eye piece and detecting means so that the sample field can be identified. Since a shutter means is utilized, only a small amount of time elapses between the time the image in the first branch is received by the detector and the image in the second branch is received. Accordingly the first and second branches will be subject to the same illumination for a series of measurements. The first branch may be directed to obtain an image of the foliage of a tree and obtain measurements therefrom directly in the field and thereby provide an accurate indication of the spectral reflectance of a reasonably sized area from which to evaluate types of camouflage or the like.
  • According to the present invention, a mirror for a spectrophotometer is characterised by:
    • (a) an aperture therein to allow light to pass through the mirror to a first location;
    • (b) reflective portions to reflect light to a second location;
    • (c) transparent portions to allow light to pass through said mirror to said second location; and
    • (d) further reflective portions to reflect light to said first location.
  • Such a mirror is particularly suitable for use as the splitter means of the optical system of a spectrophotometer as described above. The mirror is arranged so that the portion of the mirror image in the first branch received at the detecting means passes through the aperture so that the image is not affected by the mirror, and the reflective portions of the mirror direct a part of the image in the first branch to the eye piece. A portion of the image in the second branch passes through the transparent parts of the mirror to the eye piece, and the remainder of the image is reflected to the detecting means. With this arrangement the sample field will be missing in the eye piece, thereby indicating that the image corresponding to the missing area has been directed to the detecting means.
  • A preferred embodiment of the invention will now be described with reference to the accompanying drawings, in which:-
    • Figure 1 is a diagram of an optical system for a spectrophotometer and including a mirror in accordance with the invention;
    • Figure 2 is a view of the mirror used in the system of Figure 1; and,
    • Figure 3 is a diagram of the image seen in an eye piece of the system of Figure 1.
  • It should be understood that the operation of a spectrophotometer in which the optical system of Figure 1 may be embodied is well known and accordingly will not be described in full detail herein.
  • Referring to Figure 1 the optical system includes a sample branch formed of an aiming mirror 10 and an objective lens 12. A reference branch includes an objective lens 14. An erecting lens 16 and an eye piece 19 are provided and the lens 12 and the lens 16 and the eye piece 19 form a first telescope,with the lenses 14 and 16 and eye piece 19 forming a second telescope. As shown the first and second telescope have a common primary focus. Located at the common primary focus is a segmented mirror 20.
  • A rotational shutter 18 is provided which is generally cone shaped and is driven by an electric motor (not shown) to rotate as shown by arrow A. As shown the mirror 20 projects into cone 22 of the shutter 18 and the cone 22,is provided with an opening 24 so that as the cone is rotated by the electric motor, light from the lens 12 passes through the opening to mirror 20. Then as the cone continues to rotate there is a period when the mirror 20 receives no light until the opening 24 allows the light from lens 14 to pass therethrough to the mirror 20 and then there is a further period of darkness until the opening again allows light to pass from lens 12 to mirror 20.
  • Referring now to Figure 2 which shows the segmented mirror 20, it will be seen that the mirror is provided with a slit 30, two quadrant shaped portions 32 and one rectangular portion 32 which are aluminised to provide reflecting portions. The remaining portion 34 of the mirror is transparent and is generally rectangular in configuration so that a lower portion 36 may be used to mount the mirror in a desired configuration.
  • The mirror 20 is mounted such that light passing from lens 12 through the opening 24 is reflected from the aluminized portions 32 and the remainder passes through slit 30 and portion 34 to alignment mirror 40. Accordingly reflected light from the aluminised portions 32 passes through erecting lens 16, rectangular reticle 17 and eye piece 19. The parts of the sample image corresponding to aluminised portions 32 are therefore seen in the eye piece 19. These are the portions Sly S2 and S3 in Figure 3. The portions R1, R2 and R3 are transmitted to the mirror 40 and will appear black when the opening 24 allows light to pass from lens 12. Light from the lens 14 which passes through opening 24 passes through the transparent portion 34 and slit 30 of the mirror 20 to lens 16 and then to eye piece 19 and the light reflected from the aluminised portions 32 of the mirror 20 is reflected to mirror 40. A user will therefore see the portion of the reference image labeled R , R2 and R3 in the eye piece 19 with the image corresponding to the portion S2 being reflected to the mirror 40.
  • Light passing through the transparent portion 34 of mirror 20 from lens 12 is reflected from mirror 40 onto the sides of an entrance slit of monochromator 46 and is absorbed by the sides of the monochromator. Only the light passing through slit 30, which is reflected from mirror 40 enters the monochromator from lens 12 as will be hereinafter described.
  • With the shutter 18 rotating as shown by arrow A the field of view through eye piece 19 consists of a mosaic of parts of the sample and reference as shown in Figure 3 with the parts of the image from lens 14 at S2 and the image from lens 12 at RG being transmitted to mirror 40. These are easily checked by alternately capping the sample and reference objective lenses wherein images will each be observed as semicircles, with missing strips corresponding to the input to the detecting system. The measured field of view is further defined by the rectangular reticle 17.
  • The mirror 40 is arranged so that light passing through the slit 30 from lens 12 is reflected through relay lens 42, visible order sorting filter 44 to a lower half of the entrance slit in the monochromator 46. Light of particular wavelengths is sequentially obtained from monochromator 46 and passed through an infra-red order sorting filter 48 to a movable mirror 50, an infra-red pass filter 52, cooled lead sulphide detector 54 or to photomultiplier tube 56 as in a conventional spectrophotometer. It should of course be noted that mirror 50 is moved to allow light to pass to the detector 54 or is left in place to direct light to photomultiplier tube 56. Similarly light from rectangular portion 32 of mirror 20 and lens 14 is reflected to mirror 40 and enters the top half of the entrance slit of monochromator 46 and then to photomultiplier tube 56 or detector 54 in the same manner as described immediately above. The light from the other aluminised portions 32 is reflected by mirror 40 to the sides of the monochromator entrance slit where it is absorbed.
  • The monochromator is thus provided with an input in a four-part cycle of darkness then reference image from lens 14 then darkness then sample image from lens 12 as in a conventional spectrophotometer.
  • The spectral information generally required is in the visible and near infra-red spectrum in the range of 380 - 1800mm. It should also be noted that the shutter 18 may be provided with small holes (not shown) on flange 21. Photodetectors are arranged to provide synchronizing pulses corresponding to darkness and light as the shutter rotates so that the detecting equipment is able to receive a signal which can be used to distinguish an image from the sample field and the image from the reference target. This would be well known to those familiar with spectrophotometers and will not be described herein.
  • As would be well understood to prevent ambient light, other than that entering the lenses 12 and 14, from entering the system the system would be located in a housing schematically shown by the reference numeral 60.
  • For details concerning the use of a spectrophotometer embodying the optical system illustrated, reference may be made to our application No. 82300121.9.

Claims (4)

  1. A mirror for a spectrophotometer, characterised by:
    (a) an aperture (30) therein to allow light to pass through the mirror to a first location (46-56);
    (b) reflective portions (32) to reflect light to a second location (19);
    (c) transparent portions (34) to allow light to pass through said mirror to said second location (19); and,
    (d) further reflective portions (32) to reflect light to said first locations (46-56).
  2. 2. A mirror according to claim 1, wherein the reflective portions (32) are aluminized reflective portions.
  3. 3. A mirror according to claim 1, wherein the aperture is a slit (30), and the slit and at least one of the further reflective portions (32) are generally rectangular portions.
  4. 4. A mirror according to any one of claims 1 to 3, wherein said reflective and further reflective portions are common reflective portions (32), and wherein light is reflected from one side of the mirror to the first location (44-56) and light is reflected from the other side of the mirror to the second location (19)..
EP84100296A 1981-02-24 1982-01-11 A mirror for a spectrophotometer Withdrawn EP0122364A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
AU7726/81 1981-02-24
AUPE772681 1981-02-24

Related Parent Applications (2)

Application Number Title Priority Date Filing Date
EP82300121A Division-Into EP0059025B1 (en) 1981-02-24 1982-01-11 An optical system for a spectrophotometer
EP82300121A Division EP0059025B1 (en) 1981-02-24 1982-01-11 An optical system for a spectrophotometer

Publications (1)

Publication Number Publication Date
EP0122364A1 true EP0122364A1 (en) 1984-10-24

Family

ID=3768974

Family Applications (2)

Application Number Title Priority Date Filing Date
EP82300121A Expired EP0059025B1 (en) 1981-02-24 1982-01-11 An optical system for a spectrophotometer
EP84100296A Withdrawn EP0122364A1 (en) 1981-02-24 1982-01-11 A mirror for a spectrophotometer

Family Applications Before (1)

Application Number Title Priority Date Filing Date
EP82300121A Expired EP0059025B1 (en) 1981-02-24 1982-01-11 An optical system for a spectrophotometer

Country Status (5)

Country Link
US (1) US4478513A (en)
EP (2) EP0059025B1 (en)
JP (1) JPS57211023A (en)
CA (1) CA1173663A (en)
DE (1) DE3264093D1 (en)

Families Citing this family (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4708475A (en) * 1983-06-30 1987-11-24 Atlantic Richfield Company Portable luminescence sensor
DE3520120A1 (en) * 1985-06-05 1986-12-11 Schumacher Kg, 6000 Frankfurt Device for observing the measuring field on a spectral measuring head
US4671662A (en) * 1985-06-18 1987-06-09 Atlantic Richfield Company Luminescense and reflectance detection radiometer with changeable optical assembly
DE4235165C2 (en) * 1992-10-19 1995-01-19 Thyssen Stahl Ag Optical beam splitter, especially for a laser beam
US5652654A (en) * 1996-08-12 1997-07-29 Asimopoulos; George Dual beam spectrophotometer
GB9704967D0 (en) * 1997-03-11 1997-04-30 Howard Foundation Flicker photometer
US7173698B2 (en) * 2004-04-13 2007-02-06 The United States Of America As Represented By The Secretary Of The Army Simultaneous 4-stokes parameter determination using a single digital image
CN1658014A (en) * 2005-01-12 2005-08-24 苏州信达光电科技有限公司 Non optical path difference optical splitter in convergence light path of optical imaging system
US7274449B1 (en) 2005-06-20 2007-09-25 United States Of America As Represented By The Secretary Of The Army System for determining stokes parameters
US7295312B1 (en) 2006-05-10 2007-11-13 United States Of America As Represented By The Secretary Of The Army Rapid 4-Stokes parameter determination via Stokes filter wheel
DE102008041818B4 (en) * 2008-09-04 2013-10-17 Leica Microsystems Cms Gmbh An optical system for merging a first and a second field beam respectively emanating from an object into a resulting image beam
CN101813520B (en) * 2009-12-23 2013-01-09 杭州远方光电信息股份有限公司 Two-dimensional spectrum measuring device
DE102011115717A1 (en) * 2011-10-12 2013-04-18 Carl Zeiss Sports Optics Gmbh Handheld binocular for use in e.g. agricultural application, has spectrometer that is attached outside housing
US10989498B2 (en) * 2016-04-12 2021-04-27 John L. Baker Variable range visual targeting adjustment systems, methods, and apparatus
US10386159B2 (en) * 2016-04-12 2019-08-20 John L. Baker Visual targeting variable range adjusting systems, methods, and apparatus
US11543211B2 (en) * 2016-04-12 2023-01-03 John L. Baker Variable range compensating device
US10877373B2 (en) 2018-07-02 2020-12-29 John L. Baker Image offsetting apparatuses, systems, and methods

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR483761A (en) * 1916-02-11 1917-08-08 Percy Douglas Brewster Improvements in split-light devices
DE479755C (en) * 1929-07-22 Willy F Bielicke Beam splitter
DE1772015A1 (en) * 1968-03-21 1971-01-07 Koch & Sterzel Kg Device for the optical superimposition of two images
DE2113966A1 (en) * 1970-03-23 1971-10-07 Hazeltine Corp Partially reflective mirror and process for its manufacture
US3917406A (en) * 1974-09-16 1975-11-04 Perkin Elmer Corp Optical beam splitter

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE414400C (en) * 1924-01-22 1925-06-05 Wilhelm Ostwald Dr Photometer head
DE938271C (en) * 1953-11-03 1956-01-26 Leitz Ernst Gmbh Comparative microscope
US3749494A (en) * 1970-10-26 1973-07-31 Ranging Inc Gun sighting and ranging mechanism
SE362146B (en) * 1972-07-21 1973-11-26 Jungner Instrument Ab
SU721719A1 (en) * 1977-07-27 1980-03-18 Ленинградский Институт Точной Механики И Оптики Attachment to monochromator for measuring reflex coefficient of surfaces in the backward direction
US4168910A (en) * 1978-04-27 1979-09-25 The Perkin-Elmer Corporation Optical beam-switching chopper

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE479755C (en) * 1929-07-22 Willy F Bielicke Beam splitter
FR483761A (en) * 1916-02-11 1917-08-08 Percy Douglas Brewster Improvements in split-light devices
DE1772015A1 (en) * 1968-03-21 1971-01-07 Koch & Sterzel Kg Device for the optical superimposition of two images
DE2113966A1 (en) * 1970-03-23 1971-10-07 Hazeltine Corp Partially reflective mirror and process for its manufacture
US3917406A (en) * 1974-09-16 1975-11-04 Perkin Elmer Corp Optical beam splitter

Also Published As

Publication number Publication date
JPS57211023A (en) 1982-12-24
EP0059025A1 (en) 1982-09-01
US4478513A (en) 1984-10-23
DE3264093D1 (en) 1985-07-18
CA1173663A (en) 1984-09-04
EP0059025B1 (en) 1985-06-12

Similar Documents

Publication Publication Date Title
EP0122364A1 (en) A mirror for a spectrophotometer
JP3128536B2 (en) Small and large diameter imaging spectrometer
US5621460A (en) Optical differentiation between plants and background utilizing a single CCD camera
US3874799A (en) Method and apparatus for color spectrophotometry
US5166755A (en) Spectrometer apparatus
US3829218A (en) Method of spectral analysis
US6980295B2 (en) Compact catadioptric imaging spectrometer utilizing reflective grating
Beaulieu et al. A survey of planetary nebulae in the southern Galactic bulge
EP0074225B1 (en) Radiometer
US7016037B2 (en) Imaging spectrometer utilizing immersed gratings with accessible entrance slit
Garzón et al. A two-micron Galactic survey
US6922240B2 (en) Compact refractive imaging spectrometer utilizing immersed gratings
US6977727B2 (en) Compact imaging spectrometer utilizing immersed gratings
US6114683A (en) Plant chlorophyll content imager with reference detection signals
CA1187717A (en) Optical system for a spectrophotometer
US11624654B1 (en) Compact modulation transfer function colorimeter
Dao et al. Space object characterization with 16-visible-band measurements at Magdalena Ridge Observatory
Golowich et al. Three-dimensional radiative transfer for hyperspectral imaging classification and detection
JPS63120230A (en) Spectrophotometer
Schnur et al. Observing facilities at the European Southern Observatory (ESO) in Chile for cometary observations
Broadfoot et al. Panchromatic spectrograph with supporting monochromatic imagers
Code Stellar spectroscopy by photoelectric scanning
Kohoutek et al. OBSERVING FACILITIES AT THE EUROPEAN SOUTHERN OBSERVATORY (ESO) IN CHILE FOR COMETARY OBSERVATIONS
Skinner et al. A double-beam telespectrophotometer for field use
JPH07103826A (en) Multiangle reflection photometer

Legal Events

Date Code Title Description
PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

17P Request for examination filed

Effective date: 19840120

AC Divisional application: reference to earlier application

Ref document number: 59025

Country of ref document: EP

AK Designated contracting states

Designated state(s): CH DE FR GB IT LI SE

17Q First examination report despatched

Effective date: 19860410

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWN

18D Application deemed to be withdrawn

Effective date: 19860821

RIN1 Information on inventor provided before grant (corrected)

Inventor name: MCNEILL, ALAN ROBERT

Inventor name: FREEMAN, LEWIS ORMAND

Inventor name: STOKES, REX ANDREW

Inventor name: SKINNER, DAVID ROBERT